Prevention of Solidification Cracking in Alloy 718 Additive Manufacturing by Laser Metal Deposition Method based on Control Guidelines for Weld Solidification Cracking
Author:
Affiliation:
1. Graduate School of Engineering, Osaka University
2. Graduate School of Engineering, Osaka University (Current affiliation, Hitachi Zosen Corporation)
3. SHIBAURA MACHINE CO.,LTD.
Publisher
Japan Welding Society
Link
https://www.jstage.jst.go.jp/article/qjjws/42/1/42_12/_pdf
Reference25 articles.
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2. 2) Y. Chen, K. Zhang, J. Huang, S. Reza, E. Hosseini, and Z. Li: Characterization of heat affected zone liquation cracking in laser additive manufacturing of Inconel 718, Materials and Design, 90(2016), pp.586-594, https://doi.org/10.1016/j.matdes.2015.10.155.
3. 3) R. Paul, S. Anand, F. Gerner: Effect of Thermal Deformation on Part Errors in Metal Powder Based Additive Manufacturing Process, Journal of Manufacturing Science and Engineering, 136(2014), 031009, https://doi.org/10.1115/1.4026524.
4. 4) X. Liang, W. Dong, S. Hinnebusch, Q. Chen, H.T. Tran, J. Lemon, L. Cheng, Z. Zhou, D. Hayduke, A.C. To: Inherent strain homogenization for fast residual deformation simulation of thin-walled lattice support structures built by laser powder bed fusion additive manufacturing, Additive Manufacturing, 32(2020), 101091, https://doi.org/10.1016/j.addma.2020.101091.
5. 5) S. Yamashita, A. Uegaki, M. Takeuchi, S. Tanigaki, K. Saida: Elucidation and Verification of Cracking Behavior in Additive Manufacturing of Alloy 718 Based on Fractography, Quarterly Journal of Japan Welding Society, 採択日:2023年12月25日.
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